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Reconstruction of in vivo fluorophore concentration variation with structural priors and smooth penalty

机译:用结构先验和平稳罚分重建体内荧光团浓度变化

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摘要

Reconstruction of fluorophore concentration variation in fluorescence molecular tomography is expected to reveal the metabolic processes of fluorescent biomarkers in vivo. However, the complicated and strong noise within in vivo data inhibits its applications for in vivo cases. A smooth penalty method is presented in this work to suppress the noise. The method is based on a recursive reconstruction scheme which reconstructs the fluorophore concentration variation rates (FCVRs) of two neighboring frames at the same time within an inner iteration. In addition, the performance of the Laplacian-type regularization incorporating structural priors is investigated. Results of simulations suggest that the smooth penalty method almost has no influence on the reconstructed FCVRs when the target curve is smooth, and results of in vivo experiments on mice indicate that the method is capable of suppressing the noise and achieving smooth time courses of fluorescent yield. Results of both the simulations and in vivo experiments demonstrate that the Laplacian-type regularization can improve the image quality. (C) 2016 Optical Society of America
机译:荧光分子层析成像中荧光团浓度变化的重建有望揭示体内荧光生物标志物的代谢过程。但是,体内数据中复杂而强烈的噪声限制了其在体内情况下的应用。在这项工作中提出了一种平滑惩罚方法来抑制噪声。该方法基于递归重建方案,该方案在内部迭代中同时重建两个相邻帧的荧光团浓度变化率(FCVR)。此外,研究了结合结构先验的拉普拉斯型正则化的性能。仿真结果表明,光滑罚分法在目标曲线平滑时几乎对重构的FCVR没有影响,对小鼠的体内实验结果表明该方法能够抑制噪声并实现荧光产量的平稳时间进程。仿真和体内实验的结果均表明,拉普拉斯型正则化可以提高图像质量。 (C)2016美国眼镜学会

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